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高粱小亚基完全替代水稻 Rubisco 的杂种 Rubisco 赋予 C3 植物样的高催化活性。

Hybrid Rubisco with Complete Replacement of Rice Rubisco Small Subunits by Sorghum Counterparts Confers C Plant-like High Catalytic Activity.

机构信息

Department of Biotechnology, College of Life Sciences, Ritsumeikan University, 1-1-1 Noji-Higashi, Kusatsu 525-8577, Japan.

Graduate School of Agricultural Science, Kobe University, 1-1 Rokkodai-tyou, Nada-ku, Kobe 657-8501, Japan.

出版信息

Mol Plant. 2020 Nov 2;13(11):1570-1581. doi: 10.1016/j.molp.2020.08.012. Epub 2020 Aug 31.

Abstract

Photosynthetic rate at the present atmospheric condition is limited by the CO-fixing enzyme ribulose-1,5-bisphosphate carboxylase/oxygenase (Rubisco) because of its extremely low catalytic rate (k) and poor affinity for CO (K) and specificity for CO (S). Rubisco in C plants generally shows higher k than that in C plants. Rubisco consists of eight large subunits and eight small subunits (RbcS). Previously, the chimeric incorporation of sorghum C-type RbcS significantly increased the k of Rubisco in a C plant, rice. In this study, we knocked out rice RbcS multigene family using the CRISPR-Cas9 technology and completely replaced rice RbcS with sorghum RbcS in rice Rubisco. Obtained hybrid Rubisco showed almost C plant-like catalytic properties, i.e., higher k, higher K, and lower S. Transgenic lines expressing the hybrid Rubisco accumulated reduced levels of Rubisco, whereas they showed slightly but significantly higher photosynthetic capacity and similar biomass production under high CO condition compared with wild-type rice. High-resolution crystal structural analysis of the wild-type Rubisco and hybrid Rubisco revealed the structural differences around the central pore of Rubisco and the βC-βD hairpin in RbcS. We propose that such differences, particularly in the βC-βD hairpin, may impact the flexibility of Rubisco catalytic site and change its catalytic properties.

摘要

在当前大气条件下,光合作用速率受到 CO 固定酶核酮糖-1,5-二磷酸羧化酶/加氧酶(Rubisco)的限制,因为其催化速率(k)极低,对 CO 的亲和力(K)和对 CO 的特异性(S)较差。C 植物中的 Rubisco 的 k 通常高于 C 植物。Rubisco 由八个大亚基和八个小亚基(RbcS)组成。先前,高粱 C 型 RbcS 的嵌合掺入显着提高了 C 植物水稻中 Rubisco 的 k。在这项研究中,我们使用 CRISPR-Cas9 技术敲除了水稻 RbcS 多基因家族,并在水稻 Rubisco 中完全用高粱 RbcS 取代了水稻 RbcS。获得的杂种 Rubisco 表现出几乎类似于 C 植物的催化特性,即更高的 k、更高的 K 和更低的 S。表达杂种 Rubisco 的转基因系积累的 Rubisco 水平降低,而与野生型水稻相比,它们在高 CO 条件下表现出稍高但显着更高的光合能力和相似的生物量生产。野生型 Rubisco 和杂种 Rubisco 的高分辨率晶体结构分析揭示了 Rubisco 中心孔周围和 RbcS 中的βC-βD 发夹的结构差异。我们提出,这些差异,特别是在βC-βD 发夹中,可能会影响 Rubisco 催化位点的灵活性并改变其催化特性。

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